TY - JOUR
T1 - Frequency-dependent stimulated and post-stimulated voltage control of magnetism in transition metal nitrides
T2 - towards brain-inspired magneto-ionics
AU - Tan, Zhengwei
AU - de Rojas, Julius
AU - Martins, Sofia
AU - Lopeandia, Aitor
AU - Quintana, Alberto
AU - Cialone, Matteo
AU - Herrero-Martín, Javier
AU - Meersschaut, Johan
AU - Vantomme, André
AU - Costa-Krämer, José L.
AU - Sort, Jordi
AU - Menéndez, Enric
N1 - Publisher Copyright:
© 2023 The Royal Society of Chemistry.
PY - 2022/10/28
Y1 - 2022/10/28
N2 - Magneto-ionics, which deals with the change of magnetic properties through voltage-driven ion migration, is expected to be one of the emerging technologies to develop energy-efficient spintronics. While a precise modulation of magnetism is achieved when voltage is applied, much more uncontrolled is the spontaneous evolution of magneto-ionic systems upon removing the electric stimuli (i.e., post-stimulated behavior). Here, we demonstrate a voltage-controllable N ion accumulation effect at the outer surface of CoN films adjacent to a liquid electrolyte, which allows for the control of magneto-ionic properties both during and after voltage pulse actuation (i.e., stimulated and post-stimulated behavior, respectively). This effect, which takes place when the CoN film thickness is below 50 nm and the voltage pulse frequency is at least 100 Hz, is based on the trade-off between generation (voltage ON) and partial depletion (voltage OFF) of ferromagnetism in CoN by magneto-ionics. This novel effect may open opportunities for new neuromorphic computing functions, such as post-stimulated neural learning under deep sleep.
AB - Magneto-ionics, which deals with the change of magnetic properties through voltage-driven ion migration, is expected to be one of the emerging technologies to develop energy-efficient spintronics. While a precise modulation of magnetism is achieved when voltage is applied, much more uncontrolled is the spontaneous evolution of magneto-ionic systems upon removing the electric stimuli (i.e., post-stimulated behavior). Here, we demonstrate a voltage-controllable N ion accumulation effect at the outer surface of CoN films adjacent to a liquid electrolyte, which allows for the control of magneto-ionic properties both during and after voltage pulse actuation (i.e., stimulated and post-stimulated behavior, respectively). This effect, which takes place when the CoN film thickness is below 50 nm and the voltage pulse frequency is at least 100 Hz, is based on the trade-off between generation (voltage ON) and partial depletion (voltage OFF) of ferromagnetism in CoN by magneto-ionics. This novel effect may open opportunities for new neuromorphic computing functions, such as post-stimulated neural learning under deep sleep.
UR - http://www.scopus.com/inward/record.url?scp=85141856517&partnerID=8YFLogxK
U2 - 10.1039/d2mh01087a
DO - 10.1039/d2mh01087a
M3 - Article
C2 - 36305823
AN - SCOPUS:85141856517
SN - 2051-6347
VL - 10
SP - 88
EP - 96
JO - Materials Horizons
JF - Materials Horizons
IS - 1
ER -